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聚合物中两个罗丹明的芳香融合导致的协同和几何依赖性机械变色反应。

Cooperative and Geometry-Dependent Mechanochromic Reactivity through Aromatic Fusion of Two Rhodamines in Polymers.

机构信息

State Key Laboratory of Supramolecular Structure and Materials, College of Chemistry, Jilin University, Changchun 130012, P. R. China.

Department of Chemistry, Tianjin University, Tianjin 300354, P. R. China.

出版信息

J Am Chem Soc. 2022 Sep 21;144(37):17120-17128. doi: 10.1021/jacs.2c07015. Epub 2022 Sep 7.

Abstract

The unique topological features of Piezo proteins underlie the lever-like cellular mechanotransduction mechanism. This knowledge inspires us to seek topological/geometric control of mechanochromophores with unprecedentedly amplified, synergistic changes in polymers to serve as ideal stress probes. Here, by judicious placement of two spirolactam rings into aminobenzopyranoxanthene, a series of stereo- and regio-isomeric rhodamine-like mechanophores are developed. With two labile bonds closely coupled into one rigidified scaffold, these π-fused bis-mechanophores enable mechanochromic polymers, featuring cooperative bond scission, low rupture force (lower than rhodamine), and geometry-controlled ring-opening reactivity. Sonication, single-molecule force spectroscopy experiments, and density functional theory calculations provide insight into the force-color relationship and rationalize how the difference in reactivity of the four isomeric mechanophores is affected by their molecular geometry and thermodynamic equilibrium. Our strategy based on the aromatic fusion of bis-mechanophore promises a modular approach to isomeric mechanophores for cooperative bond scission. Also, important insights into internal and external factors governing tandem mechanochemical reactions are gained.

摘要

Piezo 蛋白独特的拓扑特征为杠杆式细胞力转导机制提供了基础。这一知识启发我们寻求拓扑/几何控制机械变色团,在聚合物中实现前所未有的放大、协同变化,作为理想的应力探针。在这里,通过将两个螺环内酰胺环巧妙地放置在氨基苯并吡喃氧杂蒽酮中,开发了一系列立体和区域异构的罗丹明样机械变色团。由于两个不稳定键紧密耦合到一个刚性支架中,这些π 键融合的双机械变色团使机械变色聚合物具有协同键断裂、低断裂力(低于罗丹明)和几何控制的开环反应性。超声、单分子力谱实验和密度泛函理论计算提供了对力-色关系的深入了解,并合理说明了四个异构机械变色团的反应性差异如何受到其分子几何形状和热力学平衡的影响。我们基于双机械变色团的芳构融合的策略为协同键断裂的异构机械变色团提供了一种模块化方法。此外,还获得了关于控制串联机械化学反应的内部和外部因素的重要见解。

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